Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

In C#, I make an http post and get an xml in the response in the form of a byte array (bret), which I deserialize into a class easily:

MemoryStream m = new MemoryStream(bret);
XmlSerializer s = new XmlSerializer(typeof(TransactionResults));
TransactionResults t = (TransactionResults)s.Deserialize(m);

What would be the correct and easiest way to do the same in Java?

share|improve this question
    
Feel free to edit the title into something more correct –  jmfsg Jan 12 '11 at 13:36
add comment

4 Answers

up vote 0 down vote accepted

Make your POST request via something like

http://www.exampledepot.com/egs/java.net/post.html

or use HttpClient:

http://hc.apache.org/httpclient-3.x/methods/post.html

Depending on how you have serialized your data, you should use a corresponding de-serializer. XStream is a good simple choice for such tasks:

http://xstream.codehaus.org/

All of this is admittedly more code, but this is a typical tradeoff of .NET vs Java systems (although it's more code, there are advantages to Java).

share|improve this answer
add comment

Using X-Stream - for a get request :

XStream xstream = new XStream(new DomDriver());
xstream.alias("person", Person.class);
URL url = new URL("www.foo.bar/person/name/foobar");
BufferedReader in = new BufferedReader(new InputStreamReader(url.openStream()));
Person foobar = (Person) xstream.fromXML(in);

You can modify the call to url for a post.

share|improve this answer
add comment

JAXB is the Java standard (JSR-222) for converting objects to XML with multiple implementations: Metro, EclipseLink MOXy (I'm the tech lead), Apache JaxMe.

The HTTP operations can be accessed in Java using code like:

String uri =
    "http://localhost:8080/CustomerService/rest/customers/1";
URL url = new URL(uri);
HttpURLConnection connection =
    (HttpURLConnection) url.openConnection();
connection.setRequestMethod("GET");
connection.setRequestProperty("Accept", "application/xml");

JAXBContext jc = JAXBContext.newInstance(Customer.class);
InputStream xml = connection.getInputStream();
Customer customer =
    (Customer) jc.createUnmarshaller().unmarshal(xml);

connection.disconnect();

The above code sample is from:

For a comparsion of JAXB and XStream see:

share|improve this answer
add comment

If you don't want to map your result into classes, you might want to check out Resty. It makes accessing JSON, XML or any other data type a one-liner. Here is code that parses the Slashdot RSS as XML and prints all the linked articles.

Resty r = new Resty();
NodeList nl = r.xml("http://rss.slashdot.org/Slashdot/slashdotGamesatom").get("feed/entry/link");
for (int i = 0, len = nl.getLength(); i < len; i++) {
    System.out.println(((Element)nl.item(i)).getAttribute("href"));
}
share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.